Hard Carbons as Anodes in Sodium-Ion Batteries: Sodium Storage Mechanism and Optimization Strategies
Abstract
:1. Introduction
2. Carbon Based Anode Materials
2.1. Graphite
2.2. Soft Carbon
2.3. Hard Carbon
3. Hard Carbon Materials
3.1. Synthetic Raw Material
- Carbohydrate or other organic polymers; for example, sucrose [41,42], cellulose [43,44], and lignin [45] have been used as precursors for the fabrication of HC anodes. In particular, Hu [44] prepared nanofibers with a short-range ordered graphite lattice and porous structures using cellulose as a raw material at the low pyrolysis temperature of 1000 °C. It exhibited a high reversible capacity of 340 mAh g−1.
- Biomass source; such as peel [46,47,48], chitin [40], cotton [49], algae [50] and many others have also been used in the mass production of HC. The selection of a biomass source precursor plays an important part in the preparation of electrode materials with desired electrochemical properties [51]. According to a study reported by Xu and coauthors, an HC with a large layer spacing was fabricated based on a one-step pyrolysis of grapefruit peel in an inert atmosphere. The as-prepared HC anode has a reversible capacity of 430.5 mAh g−1 at a current density of 30 mA g−1 and remarkable cycling stability [47]. The produced HC showed a honeycomb-like structure and expanded cavities, which facilitated the diffusion of the electrolyte into the bulk of the material and shortened the distance of Sodium-ion insertion. These properties are beneficial to improve the rate capability and reversible capacity.
- Resin carbon; for example, phenolic resin [52], and polyacrylonitrile [53] are another group of HC precursors. New progress in the research of Zhong’s group has revealed that HC can originate from a polyacrylonitrile doped polar molecule (Melamine). After spinning, they carbonized it to form HC nanofibers, which show a high gravimetric capacity, high-power capability, and long-term cycling stability of 200 mAh g−1 at 1 A g−1 current density after 1200 cycles [54].
Raw Material | Electrochemical Performance * (Capacity Performance and Cycling Stability) | Ref. | |
---|---|---|---|
Organic polymers | Sugarcane bagasse | ~290 mAh g−1 at 0.03 A g−1, 94% of capacity retention after 300 cycles. | [41] |
Sucrose | 361 mAh g−1 at 0.02 A g−1, 93.4% of capacity retention after 100 cycles. | [42] | |
Cellulose | ~300 mAh g−1 at 0.1 C, an average capacity loss of 0.047%/cycle. | [43] | |
Ordered cellulose nanocrystals | 340 mAh g−1 at 0.1 A g−1, 88.5% of capacity retention after 400 cycles. | [44] | |
Lignocellulose (peanut shell) | 348 mAh g−1 at 0.1 C, 81.3% of capacity retention after 120 cycles. | [45] | |
Mango powder | ~520 mAh g−1 at 0.02 A g−1, ~204 mAh g−1 retained after 1000 cycles at 1 A g−1. | [46] | |
Shaddock peel | 430.5 mAh g−1 at 0.03 A g−1, 97.5% of capacity retention after 200 cycles. | [47] | |
Biomass source | Apricot shell | ~400 mAh g−1 at 0.1 C, 91.9% of capacity retention after 300 cycles. | [48] |
Natural cotton | 315 mAh g−1 at 0.1 C, 96.8% of capacity retention after 100 cycles. | [49] | |
Algae | 340 mAh g−1 at 0.025 A g−1, 160~170 mAh g−1 retained after 50 cycles. | [50] | |
Resin carbon | Phenolic resin | 311 mAh g−1 at 0.02 A g−1, more than 80% of capacity retention after 100 cycles. | [52] |
3-aminophenol /formaldehyde resins | 360 mAh g−1 at 0.03 A g−1, 86.1% of capacity retention after 100 cycles. | [53] |
3.2. Structure of HC
3.3. Sodium Storage Mechanism of HC
3.3.1. Intercalation-Adsorption
3.3.2. Adsorption-Intercalation
3.3.3. Intercalation-Pore Filling
3.3.4. Adsorption-Intercalation-Pore Filling
4. Modification and Optimization Strategies of HC
4.1. Heteroatom Doping
4.2. Structure and Morphology Designing
4.3. Preparation of Composite Materials
4.4. Optimization of Battery Conditions
4.4.1. Electrolyte Optimization
4.4.2. Anode Pre-Treatment
4.4.3. Self-Supporting Anode
5. Summary and Outlook
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
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Anode Material | Current Rate | Electrochemical Performance * (Reversible Capacity, Cycles, Capacity Retention) | Ref. | |
---|---|---|---|---|
Titanium-based | NaTiOPO4 | 0.1 C | 180 mAh g−1, /, / | [15] |
Ti2(SO4)3 | 0.1 C | 120 mAh g−1, 15, 77.5% | [16] | |
Metal oxides | Na2Ti3O7 | 0.04 C | ~200 mAh g−1, /, / | [17] |
α-MoO3 | 0.1 C | 100 mAh g−1, 500, 55%(0.2 C) | [18] | |
Metallic composite | a-TiO2-x/Sb | 100 mA g−1 | 591.9 mAh g−1, 200, 96.4%(1 A g−1) | [19] |
SiC–Sb–C | 100 mA g−1 | 595 mAh g−1, 100, 80.7% | [20] | |
Ti3C2Tx/ SnP | 0.2 A g−1 | 587 mAh g−1, 1000, 91.2% | [21] | |
Organic | Na2C8H4O4 | 0.1 C | 258 mAh g−1, 50, 74.4% | [22] |
Organic sodium carboxylate salts | 40 mA g−1 | >200 mAh g−1(full-cell), 50, / | [23] | |
Carbon−based | Carbon black | C/75 | 121 mAh g−1, /, / | [24] |
HC | 0.1 C | 300.6 mAh g−1, 100, 98.1% | [26] | |
Reduced graphene oxide | 0.2 C | 174.3 mAh g−1, 1000, 80.9% | [27] | |
Soft carbon | 20 mA g−1 | 232 mAh g−1, 40, 98.1% | [28] |
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Liu, L.; Tian, Y.; Abdussalam, A.; Gilani, M.R.H.S.; Zhang, W.; Xu, G. Hard Carbons as Anodes in Sodium-Ion Batteries: Sodium Storage Mechanism and Optimization Strategies. Molecules 2022, 27, 6516. https://doi.org/10.3390/molecules27196516
Liu L, Tian Y, Abdussalam A, Gilani MRHS, Zhang W, Xu G. Hard Carbons as Anodes in Sodium-Ion Batteries: Sodium Storage Mechanism and Optimization Strategies. Molecules. 2022; 27(19):6516. https://doi.org/10.3390/molecules27196516
Chicago/Turabian StyleLiu, Liyang, Ye Tian, Abubakar Abdussalam, Muhammad Rehan Hasan Shah Gilani, Wei Zhang, and Guobao Xu. 2022. "Hard Carbons as Anodes in Sodium-Ion Batteries: Sodium Storage Mechanism and Optimization Strategies" Molecules 27, no. 19: 6516. https://doi.org/10.3390/molecules27196516
APA StyleLiu, L., Tian, Y., Abdussalam, A., Gilani, M. R. H. S., Zhang, W., & Xu, G. (2022). Hard Carbons as Anodes in Sodium-Ion Batteries: Sodium Storage Mechanism and Optimization Strategies. Molecules, 27(19), 6516. https://doi.org/10.3390/molecules27196516